Department of Molecular Biology and Genetics and Interdisciplinary Nanoscience Center (iNANO), Aarhus University, DK-8000 Aarhus C, Denmark.
Pennsylvania Muscle Institute, School of Medicine, University of Pennsylvania, Philadelphia, PA 19104, USA.
Nucleic Acids Res. 2018 Sep 19;46(16):8651-8661. doi: 10.1093/nar/gky651.
The GTPase elongation factor EF-Tu delivers aminoacyl-tRNAs to the mRNA-programmed ribosome during translation. Cognate codon-anticodon interaction stimulates GTP hydrolysis within EF-Tu. It has been proposed that EF-Tu undergoes a large conformational change subsequent to GTP hydrolysis, which results in the accommodation of aminoacyl-tRNA into the ribosomal A-site. However, this proposal has never been tested directly. Here, we apply single-molecule total internal reflection fluorescence microscopy to study the conformational dynamics of EF-Tu when bound to the ribosome. Our studies show that GTP hydrolysis initiates a partial, comparatively small conformational change of EF-Tu on the ribosome, not directly along the path from the solution 'GTP' to the 'GDP' structure. The final motion is completed either concomitant with or following dissociation of EF-Tu from the ribosome. The structural transition of EF-Tu on the ribosome is slower when aa-tRNA binds to a cognate versus a near-cognate codon. The resulting longer residence time of EF-Tu on the ribosome may be important for promoting accommodation of the cognate aminoacyl-tRNA into the A-site.
延伸因子 EF-Tu 在翻译过程中将氨酰-tRNA 递送到 mRNA 程序化的核糖体上。对应密码子-反密码子相互作用刺激 EF-Tu 内的 GTP 水解。有人提出,EF-Tu 在 GTP 水解后会发生较大的构象变化,从而将氨酰-tRNA 容纳到核糖体的 A 位中。然而,这一假设从未被直接验证过。在这里,我们应用单分子全内反射荧光显微镜来研究结合在核糖体上的 EF-Tu 的构象动力学。我们的研究表明,GTP 水解会引发 EF-Tu 在核糖体上的部分、相对较小的构象变化,而不是直接沿着从溶液“GTP”到“GDP”结构的路径进行。最终的运动要么与 EF-Tu 从核糖体上解离同时发生,要么紧随其后。当 aa-tRNA 与对应的密码子结合时,EF-Tu 在核糖体上的结构转变比与近对应的密码子结合时更慢。EF-Tu 在核糖体上的停留时间延长可能对促进对应的氨酰-tRNA 进入 A 位很重要。